Affiliation:
1. Department of Earth and Environmental Sciences, University of Texas at Arlington, Arlington, Texas 76019, USA
Abstract
ABSTRACT
The southeast Ladakh (India) area displays one of the best-preserved ophiolite sections in this planet, in places up to 10 km thick, along the southern bank of the Indus River. Recently, in situ, ultrahigh-pressure (UHP) mineralogical evidence from the mantle transition zone (MTZ; ~410–660 km) with diamond and reduced fluids were discovered from two peridotite bodies in the basal mantle part of this Indus ophiolite. Ultrahigh-pressure phases were also found by early workers from podiform chromitites of another coeval Neo-Tethyan ophiolite in southern Tibet. However, the MTZ phases in the Indus ophiolite are found in silicate peridotites, but not in metallic chromitites, and the peridotitic UHP phases show systematic and contiguous phase transitions from the MTZ to shallower depth, unlike the discrete UHP inclusions, all in Tibetan chromitites. We observe consistent change in oxygen fugacity (fO2) and fluid composition from (C-H + H2) to (CO2 + H2O) in the upwelling peridotitic mantle, causing melting to produce mid-ocean-ridge basalt (MORB). At shallow depths (<100 km) the free water stabilizes into hydrous phases, such as pargasitic amphibole, capable of storing water and preventing melting. Our discoveries provide unique insights into deep sub-oceanic-mantle processes, and link deep-mantle upwelling and MORB genesis. Moreover, the tectonic setting of Neo-Tethyan ophiolites has been a difficult problem since the birth of the plate-tectonics concept. This problem for the origin of ophiolites in mid-ocean-ridge versus supra-subduction zone settings clearly confused the findings from Indus ophiolites. However, in this contribution, we provide arguments in favor of mid-ocean-ridge origin for Indus ophiolite. In addition, we venture to revisit the “historical contingency” model of E.M. Moores and others for Neo-Tethyan ophiolite genesis based on the available evidence and have found that our new results strongly support the “historical contingency” model.
Publisher
Geological Society of America
Reference90 articles.
1. Geochemical and isotopic constraints on the age and origin of the Nidar Ophiolitic Complex, Ladakh, India: Implications for the Neo-Tethyan subduction along the Indus suture zone;Ahmad;Tectonophysics,2008
2. Olivine-modified spinel–spinel transitions in the system Mg2SiO4-Fe2SiO4: Calorimetric measurements, thermo chemical calculation, and geophysical application;Akaogi;Journal of Geophysical Research. Solid Earth,1989
3. Conversion of low-pressure chromitites to ultrahigh-pressure chromitites by deep recycling: A good inference;Arai;Earth and Planetary Science Letters,2013
4. Unusually large Nb-Ta depletions in North Chile ridge basalts at 36°50′ to 38°56′S: major element, trace element, and isotopic data;Bach;Earth and Planetary Science Letters,1996
5. Kaersutites, suboceanic low-velocity zone, and the origin of mid-oceanic ridge basalts;Basu;Geology,1977
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